PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Powiadomienia systemowe
  • Sesja wygasła!
  • Sesja wygasła!
Tytuł artykułu

Review on quarrying methods suitable for space mining missions

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In this review paper, existing mining techniques and technologies are scrutinized for the purpose of superterrestrial use. Different aspects and challenges of a space mining mission are examined in light of the viable iron-nickel quarry operation on M-Type (metallic) asteroids. The research and findings presented in this work cover different disciplines of science and engineering, including Geology, Rock Engineering, Space Exploration, and Explosives Engineering. The particular focus of this study is on the application of shaped charge explosives in military munitions, oil well perforations, tunneling, open-pit mines, and bolder fracturing that could be deployed in asteroid mining missions. The central proposal of this research is a methodology to carve out a solid iron-nickel quarry slab, properly shaped to enter Earth’s atmosphere and land independently, without spacecraft or landing capsule, thus offering an economically feasible solution to space mining.
Rocznik
Strony
199--213
Opis fizyczny
Bibliogr. 56 poz.
Twórcy
Bibliografia
  • [1] Zhang ZX, Hou DF, Aladejare A, Ozoji T, Qiao Y. World mineral loss and possibility to increase ore recovery ratio in mining production. Int J Min Reclamat Environ July 28 2021: 1. https://www.tandfonline.com/doi/full/10.1080/17480930. 2021.1949878.
  • [2] Brown TJ, Idoine NE, Raycraft ER, Shaw RA, Hobbs SF, Everett P, Deady EA, Bide T. World mineral production. 2012. http://nora.nerc.ac.uk/id/eprint/519784/.
  • [3] Henckens ML, Van Ierland EC, Driessen PP, Worrell E. Mineral resources: geological scarcity, market price trends, and future generations. Resources Policy; Sep 1 2016. https://www.sciencedirect.com/science/article/pii/S0301420716300861.
  • [4] Sisir K. Mondal. Platinum group element (PGE) geochemistry to understand the chemical evolution of the Earth’s mantle. J Geol Soc India May 15 2011:2. Springer, https://link.springer.com/article/10.1007/s12594-011-0039-y.
  • [5] Cooper PW. Explosives engineering. Willey-VCH, Inc.; July 19 2018. https://books.google.com/books?hl=en&lr=&id=mvRlDwAAQBAJ&oi=fnd&pg=PP2&dq=P.W.+Cooper.+Explosives+engineering&ots=atjROjjte1&sig=2p10ouNrxYqvtaOmEc9h0wkTZn0#v=onepage&q=P.W.%20Cooper.%20-xplosives%20-ngineering&f=false.
  • [6] Zhang ZX. Rock fracture and blasting: theory and applications. Oxford: Butterworth-Heinemann/Elsevier; April 19 2016. https://www.elsevier.com/books/rock-fracture-and-blasting/zhang/978-0-12-802688-5.
  • [7] Brady BH, Brown ET. Rock mechanics and mining engineering. Rock Mechanics; January 25 2007. https://miningandblasting.files.wordpress.com/2009/09/rock-mechanics_for-underground-mining.pdf.
  • [8] Mini psyches’ give insights into mysterious metal-rich nearEarth asteroids. University of Arizona; Oct 1 2021. https://phys.org/news/2021-10-mini-psyches-insights-mysterious-metal-rich.html.
  • [9] The OSIRIS-REx asteroid sample return mission. IEEE; June 8 2015. https://ieeexplore.ieee.org/abstract/document/7118989.
  • [10] How NASAs Psyche mission will explore an unexplored world. December: NASA; 20 2021. https://www.jpl.nasa.gov/news/how-nasas-psyche-mission-will-explore-an-unexplored-world.
  • [11] Spacecraft: space tugs. March 12 2015. Bisbos.com. http://www.bisbos.com/space_tugs.html.
  • [12] Seedhouse Erik. Starship. Springer; May 12 2022. https://link.springer.com/chapter/10.1007/978-3-030-99181-4_9.
  • [13] Alejandro G. Belluscio. SpaceX advances drive for Mars rocket via Raptor power. NASASpaceFlight.com; March 7 2014. https://www.nasaspaceflight.com/2014/03/spacex-advances-drive-mars-rocket-raptor-power/.
  • [14] Simpson Lizzie. What are asteroids made of? Structure & composition. Starlust; January 16 2023. https://starlust.org/ what-are-asteroids-made-of/.
  • [15] Martin Beech. Towards an understanding of the fall circumstances of the Hoba meteorite. Springer Nature; August 8 2013. https://link.springer.com/article/10.1007/s11038-013-9421-7.
  • [16] Lewis John S. Mining the sky: untold riches from the asteroids, comets, and planets. National Space Society; September 23 1997. https://web.archive.org/web/20120514073218/http://www.nss.org/resources/books/non_fiction/NF_ 011_miningthesky.html.
  • [17] 1986 DA. IAU minor planet center. December 25 2022. https://www.minorplanetcenter.net/db_search/show_object?object_id=6178.
  • [18] Elkins-Tanton Linda T, Asphaug Erik, James III F Bell. Distinguishing the Origin of asteroid (16) Psyche. Springer; 26 December 2021. https://pubmed.ncbi.nlm.nih.gov/35431348/.
  • [19] Bonettia D, Dietleinb I, Fedelee A. Advanced European Reentry system based on inflatable heat shields. ResearchGate; October 12 2020. https://www.researchgate.net/publication/349217239_Advanced_European_Re-Entry_System_Based_on_Inflatable_Heat_Shields_Detailed_Design_EFESTO_project.
  • [20] Dodson Brian. NASA to test IRVE-3 inflatable reentry system. June 18 2012. New Atlas, https://newatlas.com/nasa-irve-3-inflatable-reentry-system/22974/.
  • [21] Sun Hongqiang, Zhang Shuguang. Skip Re-entry trajectory detection and guidance for maneuvering vehicles. Lockheed Martin; February 18 2020. https://www.mdpi.com/1424-8220/20/10/2976?type=check_update&version=2.
  • [22] Kennedy Donald R. History of the shaped charge effect: the first 100 years. Los Alamos National Laboratory; January 27 2019. https://apps.dtic.mil/dtic/tr/fulltext/u2/a220095.pdf.
  • [23] Brown JW. Statistical study of rock drilling by hypervelocity jets from explosive shaped charges. University of Missouri-Rolla; January 1 1971. https://scholarsmine.mst.edu/cgi/viewcontent.cgi?artide=2852&context=dodoral_dissertations.
  • [24] Matsuoka Norikazu, Murton Julian. Frost weathering: recent advances and future directions. Wiley Online Library; May 27 2008. https://onlinelibrary.wiley.com/doi/10.1002/ppp.620.
  • [25] Banadaki MD, Mohanty B. Numerical simulation of stress wave induced fractures in rock. Int J Impact Eng February 1 2012:16-25. https://www.researchgate.net/publication/257239583_Numerical_simulation_of_stress_wave_induced_fractures_in_rock.
  • [26] EXPLOSIVES AND DEMOLITIONS. Characteristics of boreholes made by shaped charges. Headquarters Department of the Army; July 11 2007. https://info.public intelligence.net/USArmy-Explosives.pdf.
  • [27] Mahdi Mohammad, Banadaki Dehghan. Stress-wave induced fracture in rock due to explosive action. University of Toronto; Jun 9 2010. https://www.google.com/url?sa=t&rct=j&q=&esrc=s&source=web&cd=&ved=2ahUKEwjGk5XnkcH1AhU8k4kEHaJ_BeoQFnoECAQQAQ&url=https%3A%2F%2Ftspace.library.utoronto.ca%2Fbitstream%2F1807%2F27567%2F1%2FDehghanBanadaki_Mahdi_201011_PhD_Thesis.pdf&usg=AOvVaw3zUmTRjEg4HitUcF BPerU_.
  • [28] Rollins RR, Clark GB. Penetration in granite by jets from shaped-charge liners of six materials. Int J Rock Mech Min Sci Geomech Abstr May 1 1973:45-55. https://scholarsmine.mst.edu/cgi/viewcontent.cgi?article=3040&context=doctoral_dissertations.
  • [29] Naeem K, Hussain A, Abbas S. A review of shaped charge variables for its optimum performance. Eng Technol Appl Sci Res December 1 2019:4917-23. https://www.etasr.com/index.php/ETASR/article/view/3153/pdf.
  • [30] Brown JW. Statistical study of rock drilling by hypervelocity jets from explosive shaped charges. University of Missouri-Rolla; February 1 1971. https://scholarsmine.mst.edu/cgi/viewcontent.cgi?artide=2852&context=doctoral_dissertations.
  • [31] Guo Min, Zu Xu-dong. Xiao-jun Shen Study on liquid- filled structure target with shaped charge vertical penetration. Defence Technology; December 6 2019. https://www.sciencedirect.com/science/article/pii/S2214914718306068.
  • [32] Minin IV, Minin OV. Shaped charges - siberian state. University; March 10 2013. https://studylib.ru/doc/2531691/ kumulyativnye-zaryady-sibirskij-gosudarstvennyj-universitet.
  • [33] Shire Jason, Polly Richard, Waddell Jesse, George Budy, Bootes Tom. Design synthesis of large shaped charges for missiles. Raytheon; August 30 2011. https://ndiastorage.blob.core.usgovcloudapi.net/ndia/2011/gunmissile/Tuesday11808_Shire.pdf.
  • [34] RPG-7V anti-tank rocket launcher ammunition. GunRF; September 20 2018. https://gunrf.ru/rg_granatomet_ps-7_pg-7vr_eng.html.
  • [35] Collier Nick. “Super-Caliber hole,” “A nonhydraulic means to complete wells.”. Innovative Defense LLC; August 1 2016. https://www.hartenergy.com/exclusives/nonhydraulic-means-complete-wells-176047.
  • [36] Bob Haslam Engineering. “PROFILE CUTTING”, https://bobhaslam.com.au/featured_item/the-key-to-cutting-300mm-plate-is-holding-a-consistent-direction-speed/ Accessed May 25 2022.
  • [37] DynaEnergetics. “Puncher Charges”, https://dynaenergetics. com/products/Shaped-Charges/Shaped-Charges#DynaSlot Accessed March 10 2022.
  • [38] Flickr. “Meteorite di Hoba”. Sergio Conti, https://www.flickr.com/photos/sergioconti/15682150765/ Not modified. License: https://creativecommons.org/licenses/by-sa/2.0/ November 1 2014.
  • [39] Encyclopedia Of Meteorites. “Casas Grandes (Iron, IIIAB)”, https://encydopedia-of-meteorites.com/Meteorite?id=5285 Accessed March 20 2022.
  • [40] Egyptphoto. “Pyramid of Khafre quarry marks”, https://egyptphoto.ncf.ca/pyramid%20of%20Khafre%20quarry%20marks.htm Accessed February 5 2022.
  • [41] XiaoR GEEK. “6DOF Smart Robot”, https://www.xiaorgeek.net/products/6dof-metal-rc-robot-arm-metal-tank-car-180-horizontal-rotation-app-ps2-handle-control Accessed February 6 2022.
  • [42] Nextwider. “Space News”. Peerapat Chuejeen, https://www.nextwider.com/spacex-starship-full-flight-animation/ November 3 2020.
  • [43] Bisbos.com. “Dornier Space Tug”, http://bisbos.com/space_tugs.html Accessed February 12 2022.
  • [44] Spacenews.com. “Design concept for Orbit Fab’s Tanker- 002”. Jeff Foust, https://spacenews.com/orbit-fab-announces-in-space-hydrazine-refueling-service/ August 30 2022.
  • [45] Innovationnewsnetwork.com. “Asteroid 16 Psyche”. iStock/ 24K-Production, https://www.innovationnewsnetwork.com/revealing-the-mysterious-origins-of-asteroid-16-psyche/12458/ June 10 2021.
  • [46] Wikimedia.org. “The European robotic arm”, https://commons.wikimedia.org/wiki/File:The_European_robotic_arm_extends_out_from_the_Nauka_module_(iss067-034865)_(cropped).jpg Accessed February 26 2022.
  • [47] Fantastic-Plastic.com “Project Orion Battleship (1963)”, https://fantastic-plastic.com/ProjectOrionBattleshipPage.htm Accessed May 15 2022.
  • [48] Risk.net. Peter Madigan, https://www.risk.net/regulation/dodd-frank-act/2453370/unresolvable-clearing-houses-pose-enormous-risk April 5 2016.
  • [49] Salon.com. “Meteorite from outer space”. Matthew Rozsa, https://www.salon.com/2022/12/07/an-extinction-level-asteroid-that-could-someday-hit-earth-was-found-hiding-near-venus/ December 7 2022.
  • [50] Techjuice. “NASA presents its supersonic parachute”. Sajeel Syed, https://www.techjuice.pk/nasa-supersonic-parachute-mars-mission-2020/November 1 2020.
  • [51] Newatlas.com. “NASA inflatable reentry vehicle during plasma phase of Mars landing (Image: NASA)”. Brian Dodson, https://newatlas.com/nasa-irve-3-inflatable-reentry-system/22974/ June 18 2012.
  • [52] Meteoriteguy.com. “Mundrabilla 1: 23.2 gram endcut”, https://meteoriteguy.com/catalog/mundrabilla.htm Accessed June 10 2022.
  • [53] 911metallurgist.com. “SHAPED CHARGE”, https://www.911metallurgist.com/rock-boulder-exploding-techniques/ Accessed May 30 2022.
  • [54] Havoc.com “Linear cutting charge”, https://havoc.com.au/explosive-products/focused-charge-info Accessed May 30 2022.
  • [55] Journals.ametsoc.org. “EDDY - CTRL differences”, https://journals.ametsoc.org/view/journals/clim/32/2/jcli-d-18-0415.1.xml Accessed May 20 2022.
  • [56] Knowledge management. “Shaped charge”, https://www.ordn.navy.mi.th/km/knowledge/2561/060-61.pdf Accessed May 30 2022.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-7b043e30-70f2-42a4-8472-736e87240bed
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.